A method and system for monitoring breathing movement of an infant is disclosed. A method and system for detecting and predictably estimating regular cycles of breathing movements is disclosed. Another disclosed aspect of the invention is directed to detect and report irregularity of breathing activity of an infant, such as cessation and non-periodicity, which suggests a likelihood of SIDS.
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18. A method of monitoring object movement, comprising:
acquiring image data;
determining a number of markers visible in the image data;
determining if the number of markers meets a threshold value; and
reporting irregularity if the number of markers does not meet the threshold value.
55. A system for monitoring object movement, comprising:
means for acquiring image data;
means for determining a number of markers visible in the image data;
means for determination if the number of markers meets a threshold value; and
means for reporting irregularity if the number of markers does not meet the threshold value.
40. A method for monitoring regular activity, comprising:
co-locating a marker block with an object such that movement of the marker block relates to movement of the object, the marker block comprising one or more markers;
viewing the marker block with a camera;
generating image data representative of the marker block; and
reporting irregularity based upon insufficient periodicity for detected movement.
63. A system for monitoring regular activity, comprising:
means for co-locating a marker block with an object such that movement of the marker block relates to movement of the object, the marker block comprising one or more markers;
means for viewing the marker block with a camera;
means for generating image data representative of the marker block; and
means for reporting irregularity based upon insufficient periodicity for detected movement.
1. A method of monitoring breathing activity, comprising:
measuring a first set of signal data representative of a breathing movement of a subject during a first time period;
pattern matching the first set of signal data with a second set of signal data related to measured breathing movement of the subject during a second time period to identify degree of deviation from periodicity of the breathing movement; and
reporting irregularity based upon results of the pattern matching.
51. A system for monitoring breathing activity, comprising:
means for measuring a first set of signal data representative of a breathing movement of a subject during a first time period;
means for pattern matching the first set of signal data with a second set of signal data related to measured breathing movement of the subject during a second time period to identify degree of deviation from periodicity of the breathing movement; and
means for reporting irregularity based upon results of the pattern matching.
26. A method of monitoring breathing activity, comprising:
receiving a set of signal data representative of a breathing movement of a subject;
estimating phase of the set of signal data;
comparing a vector of the set of signal data with one or more prior sets of signal data to identify deviation from periodicity of the breathing movement, the vector of the set of signal data based upon the phase, the one or more prior sets relating to measured breathing movement of the subject during one or more prior time periods; and
reporting irregularity based upon results of the comparison.
59. A system for monitoring breathing activity, comprising:
means for receiving a set of signal data representative of a breathing movement of a subject;
means for estimating phase of the set of signal data;
means for comparing a vector of the set of signal data with one or more prior sets of signal data to identify deviation from periodicity of the breathing movement, the vector of the set of signal data based upon the phase, the one or more prior sets relating to measured breathing movement of the subject during one or more prior time periods; and
means for reporting irregularity based upon results of the comparison.
2. The method of
3. The method of
4. The method of
determining a degree of match between the first set of signal data and the second set of signal data.
5. The method of
6. The method of
8. The method of
9. The method of
10. The method of
11. The method of
14. The method of
15. The method of
16. The method of
19. The method of
25. The method of
27. The method of
30. The method of
31. The method of
32. The method of
33. The method of
computing an inner product of a Cosine waveform with the period T and most recent T-seconds-long segment of the signal data to form an in-phase component;
computing the inner product with a Sine waveform of the period T to form a quadrature component; and
computing the inverse Tangent of result of dividing the quadrature component by the in-phase component to estimate the phase.
34. The method of
identifying an assumption for the period;
estimate location values for maximum and minimum values; and
based upon one or more sample sets, estimating the period.
36. The method of
using a 2-dimensional histogram array of signal versus phase values.
37. The method of
38. The method of
comparing the vector with other values in the 2-dimensional histogram array;
forming a clustering factor; and
identifying deviation from periodicity if clustering factor exceeds a threshold.
39. The method of
estimating latest inhale values, latest exhale extreme values, and corresponding time points.
43. The method of
44. The method of
45. The method of
defining one or more search ranges based upon estimated positions of the one or more markers; and
searching the one or more markers within the one or more search ranges.
46. The method of
48. The method of
50. The method of
52. The system of
53. The system of
54. The system of
means for determining a degree of match between the first set of signal data and the second set of signal data.
56. The system of
60. The system of
61. The system of
62. The system of
65. The system of
means for quantifying a movement of the marker block.
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The present application is a continuation-in-part of U.S. application Ser. No. 10/234,658 filed Sep. 3, 2002 and is a continuation-in-part of U.S. application Ser. No. 09/893,122 filed Jun. 26, 2001, which is a continuation-in-part of U.S. application Ser. No. 09/178,383 filed Oct. 23, 1998, now U.S. Pat. No. 6,621,889, and is a continuation-in-part of application Ser. No. 09/178,385 filed Oct. 23, 1998; now U.S. Pat. No. 6,279,579, issued on Aug. 28, 2001, and is a continuation-in-part of application Ser. No. 09/712,724 filed Nov. 14, 2000, now U.S. Pat. No. 6,690,965, which is a continuation of Ser. No. 09/178,384 filed Oct. 23, 1998, now abandoned, all of which are hereby incorporated by reference in their entirety.
The present invention relates to medical methods and systems. More particularly, the invention relates to a method and system for monitoring breathing activity of an infant.
A serious concern for parents of a newborn is the possibility of death by Sudden Infant Death Syndrome (SIDS). SIDS is commonly known as the sudden death of an infant under one year of age which remains unexplained after a thorough case investigation, including performance of a complete autopsy, examination of the death scene, and review of the clinical history. A SIDS death occurs quickly and is often associated with sleep, with no signs of suffering.
Although exact causes of SIDS are still unknown, mounting evidence suggests that some SIDS babies are born with brain abnormalities that make them vulnerable to sudden death during infancy. Studies of SIDS victims reveal that some SIDS infants have abnormalities in the “arcuate nucleus,” a portion of the brain that is likely to be involved in controlling breathing during sleep. However, scientists believe that the abnormalities that are present at birth may not be sufficient to cause death. Other factors, such as lack of oxygen and excessive carbon dioxide intake, may also contribute to the occurrence of SIDS. During sleep, a baby can experience a lack of oxygen and excessive carbon dioxide levels when they re-inhale the exhaled air. Normally, an infant can sense such inadequate air intake, and his breathing movement can change accordingly to compensate for the insufficient oxygen and excess carbon dioxide. As such, certain types of irregularity in an infant's breathing activity can be an indicator of SIDS or the likelihood of SIDS.
Therefore, monitoring of an infant's breathing activity for breathing irregularities could help prevent or detect the possibility of SIDS. One approach to monitor the breathing activity is to attach to the body of the infant a battery-powered electronic device that can mechanically detect the breathing movement. Although such device can monitor the infant's breathing directly, the battery can render the device large and heavy, which encumbers the tiny infant. Additionally, difficulty of attachment can be expected under this approach.
Another approach to monitor an infant's breathing activity is to install a pressure sensitive pad underneath the mattress where the infant is sleeping. The pad monitors the baby's breathing activity by measuring body movement. However, because the pad is unable to directly monitor the breathing movement, accuracy of the generated breathing data can be affected.
In contrast to the above approaches, the present invention provides an improved system and method that can monitor an infant's breathing activity without creating encumbrance to the infant. By continuously monitoring an infant's breathing movement during sleep and reporting detected irregularity, the present system and method can reduce the occurrence of SIDS.
In an embodiment, an optical-based system, comprising at least one camera, a marker, a computing device to compute the position of the marker, and a reporting device to transmit an alert signal, is employed to measure and record an infant's breathing movement and report detected irregularity. The system can produce breathing pattern by tracking the movement of the marker, which is placed in a particular location such that motion of the marker relates to the breathing movement of the infant.
According to an embodiment, a method for identifying breathing pattern of an infant comprises the steps of first co-locating the marker with the infant, viewing the marker with at least one camera, producing image coordinates for the identified marker viewed by the camera, comparing the image coordinates with reference coordinates for the marker, and thereafter determining breathing motion of the infant. The computing device can analyze the breathing pattern and actuate the reporting device if irregularity is detected. Irregularity includes, but not limited to, lack of periodicity in the breathing pattern and cease of the breathing motion.
These and other aspects, objects, and advantages of the invention are described below in the detailed description, drawings, and claims.
The accompanying drawings are included to provide a further understanding of the invention and, together with the Detailed Description, serve to explain the principles of the invention.
An aspect of an embodiment of the present invention comprises a method for detecting periodicity and irregularity in the respiration activity of an infant. Also disclosed are embodiments of systems and devices for detecting and reporting irregularity in the respiration activity of an infant.
System for Infant Breathing Monitoring
In an embodiment, one illumination source per camera (which is an infrared source in the preferred embodiment) projects light at the infant 106 on bed 104. The generated light is reflected from one or more landmarks on the infant's body. The camera 108, which is directed at infant 106, captures and detects the reflected light from the one or more landmarks, which are preferably located on one or more locations on the infant's chest and can be viewed by camera 108.
The output signals of camera 108 are sent to a computer 110 or other type of processing unit having the capability to receive video images. According to a particular embodiment, computer 110 includes a video frame grabber card having a separate channel for each video source utilized in the system. The images recorded by camera 108 are sent to computer 110 for processing. If camera 108 produces an analog output, the frame grabber converts the camera signals to a digital signal prior to processing by computer 110. Based upon the video signals received and analyzed by computer 110, computer 110 can send control signals to operate an alarm device 116.
Alarm device 116 can be built into or separated from computer 110. In one embodiment, upon receiving a control signal from computer 110, alarm device 116 can transmit an alarm signal, either audible, visible or both, to warn the infant's caregiver or parents of a likelihood of SIDS. Note that an alarm signal can also be transmitted to awaken infant 106 to further reduce the occurrence of SIDS. For the purpose of illustration only,
According to one embodiment, one or more passive markers 114 are located on the infant in the area to be detected for breathing movement. Each marker 114 preferably comprises a reflective or retro-reflective material that can reflect light, whether in the visible or invisible wavelengths. If the illumination source is co-located with camera 108, then marker 114 preferably comprises a retro-reflective material that reflects light mostly in the direction of the illumination source. Alternatively, each marker 114 comprises its own light source. The marker 114 is used in place of or in conjunction with physical landmarks on the infant's body that is imaged by the camera 108 to detect breathing movement of the infant. Markers 114 are preferably used instead of body landmarks because such markers 114 can be detected and tracked more accurately via the video image generated by camera 108. Because of the reflective or retro-reflective qualities of the preferred markers 114, the markers 114 inherently provide greater contrast in a video image to a light detecting apparatus such as camera 108, particularly when the camera 108 and illumination source are co-located. Markers 114 can be placed on clothing, outer coverings or blankets, or directly upon the infant 106.
Utilizing a video or optical based system to track the breathing movement provides several advantages. For example, a video or optical based system provides a reliable mechanism for repeating measurement results between uses on a given infant. In addition, the method of the invention is noninvasive, and even if markers are used, no cables or connections must be made to the infant. Moreover, if the use of markers is impractical, the system can still be utilized without markers by performing measurements of respiration activity keyed to selected body landmarks. The method of the invention is also more accurate because it is based upon direct and absolute measurement of external anatomical physical movement. Therefore, the present optical-based system is particularly suitable for monitoring the breathing movement and position of infants, for which intrusive/cumbersome equipment should not be used.
A possible inefficiency in tracking the markers 114 is that the marker may appear anywhere on the video frame, and all of the image elements of the video frame may have to be examined to determine the location of the marker 114. Thus, in an embodiment, the initial determination of locations for the marker 114 involves an examination of all of the image elements in the video frame. If the video frame comprises 640 by 480 image elements, then all 307200 (640*480) image elements are initially examined to find the location of the markers 114.
For real-time tracking of the marker 114, examining every image element for every video frame to determine the location of the marker 114 in real-time could consume a significant amount of system resources. Thus, in an embodiment, the real-time tracking of marker 114 can be facilitated by processing a small region of the video frame, referred to herein as a “tracking gate,” that is placed based on estimation of the location of the already-identified marker 114 in a previous video frame. The previously determined location of a marker 114 defined in the previous video frame is used to define an initial search range (i.e., the tracking gate) for that same marker in real-time. The tracking gate is a relatively small portion of the video frame that, in one embodiment, is centered at the previous location of the marker 114. The tracking gate is expanded only if the tracking algorithm can not locate the marker 114 within the gate. As an example, consider the situation when the previously determined location of the center or a portion of a particular marker is image element (50,50) in a video frame. If the tracking gate is limited to a 50 by 50 area of the video frame, then the tracking gate for this example would comprise the image elements bound within the area defined by the coordinates (25,25), (25,75), (75,25), and (75,75). The other portions of the video frame are searched only if the marker 114 is not found within this tracking gate.
The video image signals sent from camera 108 to computer 110 are used to generate and track motion signals representative of the movement of marker 114 and/or landmark structures on the infant's body.
In a particular embodiment of the invention, an infra-red illuminator 602 (“IR illuminator”) is co-located with camera 108. If the IR illuminator 602 is located physically close to the camera 108, then camera 108 is positioned to capture strong reflections of IR reflected from retroreflective markers on the infant. IR illuminator 602 comprises a surface that is ringed around the lens 606 of camera body 608. The surface of IR illuminator 602 contains a plurality of individual infrared LED elements 604 for producing infrared light. The LED elements 604 are organized as one or more circular or spiral patterns on the IR illuminator 602 surrounding the camera lens 606. Infrared filters that may be part of the camera 108 are removed or disabled to increase the camera's sensitivity to infrared light.
According to an embodiment, digital video recordings of the infant can be recorded via camera 108. The same camera 108 used for tracking the infant's breathing movement can be used to record video images of the infant for future reference. A normal ambient light image sequence of the infant can be obtained in synchronization with the measured movement signals of markers 114.
In an alternate embodiment, marker 114 comprises a rigid marker block having one or more reference locations on its surface. The marker block is used in place of, or in addition to, the individual retro-reflective markers 114 to detect particular locations on an infant's body with an optical imaging apparatus. Each reference location on the marker block preferably comprises a retro-reflective or reflective material that is detectable by an optical imaging apparatus, such as camera 108. The retro-reflective elements can be formed from the same material used to construct retro-reflective markers 114 of
A marker block can be formed into any shape or size, as long as the size, spacing, and positioning of the reference locations are configured such that a camera or other optical imaging apparatus can view and generate an image that accurately shows the positioning of the marker block. The marker block can be formed with shapes to fit particular body parts. For example, molds or casts that match to specific locations on the body can be employed as marker blocks. Marker blocks shaped to fit certain areas of the body facilitate the repeatable placement of the marker blocks at particular locations on the infant. Alternatively, the marker blocks can be formed to fit certain fixtures that are attached to an infant's body. In yet another embodiment, the fixtures are formed with integral marker block(s) having reflective or retro-reflective markers on them. An alternate embodiment of the marker block comprises only a single reference location/reflective element on its surface.
According to one embodiment of the invention, an infant's breathing movement can be detected by tracking retro-reflective markers attached to the marker block. As shown in
According to one embodiment, the pixel coordinates of each marker in the video frame are tracked. The distance in the pixel domain between the two markers for each video frame is thereafter measured. The known physical distance of the two markers is divided by the measured distance to provide the scale factor for transforming the incremental motion of the block in the direction of the line connecting the two markers. This scale factor is updated for each new video frame and transforms the incremental motion of each marker from pixel domain to the physical domain. The transformation accounts for changes in the camera viewing angle, marker block orientation, and its distance to the camera during motion tracking.
An infant's respiration motion can be monitored by optical tracking of a marker block, such as a marker block 802 or 806, attached to an infant's chest, clothes, blanket, or other suitable locations that can reflect the infant's breathing motion. In operation, a camera or video view of the marker block produces a set of image coordinates for the marker elements on the marker block. The position and distance of any marker element located on the marker block is known relative to other marker elements on the same marker block. By comparing the position and distance between the marker elements on a recorded image frame with the reference position and image stored for the monitoring system, the absolute position and orientation of the marker block can be estimated with a high degree of accuracy. This, in turn, provides an accurate position and orientation estimation for the infant or infant body position upon which the marker block is attached. Note that estimation of infant position and orientation can be performed in the invention using only a single marker block, rather requiring the placement of multiple markers on different locations. Moreover, a single camera can be used to track the position of the marker block, rather than requiring triangulation using multiple cameras from different positions. A single-camera process for determining the precise position and orientation of the marker block with six degrees of freedom (6 DOF), i.e., x-coordinate, y-coordinate, z-coordinate, pitch, yaw, and roll is disclosed in co-pending U.S. application Ser. No. 10/234,658, filed Sep. 3, 2002, entitled “Single-Camera Tracking of an Object”, which is hereby incorporated by reference in its entirety.
A sleeping infant can move or roll into another position such that one or more markers attached to the infant (or attached to a marker block) fall outside the field of view of camera 108. Consequently, the infant's breathing movement may no longer be detected, and reporting irregularity in breathing activity that occurs thereafter becomes impossible. Thus, in an embodiment, failing to locate one or more markers in the image frame, system 100 will transmit an alarm signal to indicate a need to reposition the infant. This alarm signal is preferably distinguishable from an alarm that indicates a detected irregularity in the breathing activity. In an alternative embodiment, system 100 will transmit an alarm signal after being unable to locate one or more markers in two or more consecutive image frames. This can reduce the number of false alarms due to the sudden movement or coughing of the infant, who nonetheless returns back to a normal position thereafter.
At step 902, a FAILURE value, which counts the number of consecutive failures to appropriately locate the markers in image frames, is set to zero. As previously stated, in one embodiment, this failure is identified by not being able to acquire three or more markers in an image frame. At step 904, an image frame is digitized from the camera video stream.
At step 906, the digitized image frame from step 904 is analyzed to detect and locate the markers in pixel coordinates. If the previous tracking was successful, use the projected centers to limit the search area for each marker to increase the computational efficiency. If processing the first image frame, recovering from lost track, or failing to locate marker(s) in the limited search area, then the whole frame is analyzed to find and locate markers.
At step 908, a determination is made whether sufficient markers were detected at step 906. If the marker block is found by the image analysis process at Step 906, the process next returns to step 902, where the FAILURE value is reset to zero, and then to step 904 is performed to the next image frame in the video stream.
If sufficient markers are not located by the image analysis process at 906, it will be assumed that the infant has moved or rolled to another position, and accordingly, the FAILURE value is incremented (910). In a preferable embodiment, if the FAILURE value has reached or exceeded a threshold value (e.g., a value of two, which indicates that the marker block cannot be located in two consecutive image frames in the video stream), an alarm signal is transmitted (914). The number of consecutive failures in locating the marker block that triggers an alarm signal can vary.
The process of
In one embodiment, a determination of the position and orientation data for the marker block can be correlated to determine the position and orientation of the infant to which it is attached. The measured movement of the marker block can be used as an indicator of the infant's respiration activity. Thus, quantifiable values such as amplitude and/or phase of the marker block movement can be generated to monitor the infant's breathing movement. These values can be displayed and analyzed for breathing patterns using any conventional algorithms. As described in more detail below, the amplitude and/or phase of the marker block and the detection of deviations from periodic breathing movement can be used to trigger an alarm signal.
Detection of Irregularity in Breathing Pattern
To monitor an infant's breathing activity, one or more sets of data representative of the breathing activity of interest are collected for the infant in an embodiment of the invention. An optical-based system, such as system 100 of
One aspect of the present invention provides a method to detect and report cessation of a breathing movement, indicating a likelihood of SIDS.
If the amplitude of the motion signal is below the threshold, the breathing activity will be determined weak, and accordingly, variable WEAK will be increased by one. In a preferable embodiment, if two consecutive weak signals have been measured (i.e., WEAK=2), then the breathing activity is assumed to have ceased, and an alarm signal is thereby transmitted (412). However, the number of consecutive weak signals that triggers an alarm signal can be altered. A higher number renders the assumption of a ceased breath more accurate, but can potentially delay an alarm signal. In contrast, using a lower number tends to be more precautionary, but can be associated with an increased frequency of false alarm, often arising from weak signal that is merely momentary.
An amplitude of the motion signal exceeding the threshold is indicative of a strong breathing activity. As such, the process returns back to step 404 to measure new breathing motion signal, after resetting variable WEAK to zero at step 414.
One embodiment of the present invention provides a method for detecting a period of the respiration activity and deviation(s) from the periodicity. For example, sudden movement or coughing by an infant can result in deviation from the detected period of the respiration cycle. According to an embodiment, the present invention can “phase lock” to the respiration movement of the infant. Since the monitoring system phase locks to the breathing movement period, deviations from that periodic signal can be identified and appropriately addressed.
At process action 504, pattern matching analysis is performed against the measured data samples. In an embodiment, the most recent set of data samples for the breathing signal is correlated against an immediately preceding set of data samples to determine the period and repetitiveness of the signal. An autocorrelation function can be employed to perform this pattern matching. For each new sample point of the breathing motion, the process computes the autocorrelation function of the last n samples of the signal, where n corresponds to approximately 1.5 to 2 signal breathing periods. The secondary peak of the autocorrelation function is then identified to determine the period and repetitiveness of the signal.
In an alternate embodiment, an absolute difference function is used instead of an autocorrelation function. Instead of secondary peak, a secondary minimum in the absolute difference is searched for. For each new sample point of the breathing motion, the process computes the minimum absolute difference between the two sets of data over a range of overlapping data samples. The secondary minimum corresponds to the data position that best matches the recent set of data samples with the preceding set of data samples.
Yet another alternate embodiment performs a pattern matching based upon a model of the breathing activity being measured. The model is a dynamic representation of the breathing motion. The latest set of data samples is matched against the model to estimate parameters of the repetitive process. According to an embodiment, the model can be periodically updated to reflect changes in infant position and orientation as well as other changes that can result in alternation in the infant's breathing pattern. For example, temperature in the infant's bedroom may have impact on the period of the breathing movement.
Pattern matching using the measured breathing signal (504) provides information regarding the degree of match, as well as a location of best match for the repetitive process. If an autocorrelation function is employed in process action 504, then the relative strength of secondary peak provides a measure of how repetitive the signal is. A threshold range value is defined to provide indication of the degree of match between the two sets of data samples. If the strength of the secondary peak is within the defined threshold range (process action 508), then the degree of match indicates that the signal is repetitive, and the secondary peak location provides an estimate of the signal period. If an absolute difference function is used in process action 504, then the relative value of the secondary minimum provides a measure of how repetitive the signal is. If the value of the secondary minimum meets a defined threshold range (508), then the degree of match indicates that the signal is repetitive, and the secondary minimum location provides an estimate of the signal period.
If the correlation value of the secondary peak or secondary minimum does not meet the defined threshold range, then a deviation from the regular breathing activity is detected, thereby indicating possible irregularity in the breathing activity of the infant. This irregularity could result, for example, re-inhaling of the exhaled carbon dioxide. In an embodiment, an alarm signal is transmitted once a deviation is detected. In a preferable embodiment as shown in
If the degree of match indicates repetitiveness, the point of best match is tested to determine if the period is within a reasonable range. The location of the secondary peak or secondary minimum provides an estimate of the period of the breathing activity. In an embodiment, the point of best match is compared to a threshold range (509). If the point of best match does not fall within the threshold range, then a deviation from regular breathing activity is detected and the process proceeds to process action 510. If the point of best match falls within the threshold range, then the signal is accepted as being repetitive (512).
The estimate of the period based on the point of best match can be used to predict the period and waveform parameters of the next set of data samples for the signal (514). Note that process actions 504, 508, and 509 test for repetitiveness based upon a plurality of data samples over a range of such samples. However, in some circumstances, a significant deviation from normal breathing movement may actually occur within the new or most recent data sample(s) being analyzed, but because the overall set of data samples indicates repetitiveness (e.g., because of averaging of absolute differences over the range of data samples being compared), process actions 504, 508, and 509 may not detect the deviation. To perform a test for rapid deviation, the predicted value from process action 514 is compared with the next corresponding data sample (515). If the predicted value does not match the actual data sample value within a defined threshold range, then a deviation is detected and the process proceeds to process action 510. If a comparison of the predicted and actual data sample values fall within the defined threshold range, then repetitiveness is confirmed, and deviation is not detected for that data sample range (516). Accordingly, variable DEVIATION will be set to zero, and the process returns to process action 502 to measure new data signal.
In an embodiment, the first time the process of
The initial step 301 of
At step 306, the process estimates the phase value of the newly acquired respiration signal sample. In an embodiment, this is performed by computing the inner product of a Cosine waveform with period T (estimated at step 304) and the most recent T-seconds-long segment of the signal. This is repeated by computing the inner product with a Sine waveform of period T. These two inner products are called, respectively, the in-phase and quadrature components of the signal. The inverse Tangent of the result of dividing the quadrature value by the in-phase value provides the estimated phase for the current respiration signal sample.
At step 308, the process compares the vector, e.g., (amplitude, phase), of the current respiration sample with previous data sample values to determine periodicity of the signal. One approach to performing this comparison step is to use a two-dimensional histogram array of signal vs. phase value that is accumulated during prior recordings of the respiration signal.
In an embodiment, a clustering factor determines how close the current respiration data sample vector is to the cluster of values observed so far. By comparing the amplitude-phase vector of each signal sample with the cluster of prior values in its neighborhood at step 310, the process provides a measure of periodicity for the signal. The signal is considered non-periodic for the current sample time when the clustering factor is below a defined threshold or tolerance level (312). Otherwise the signal is declared periodic (314). One approach is to calculate the sum of the bin populations for the 8-amplitude×5-phase surrounding bins for the current data sample. This population, as a percentage of the total population of all histogram bins accumulated so far, determines the degree to which the new sample belongs to a periodic signal. By applying a threshold to this percentage value, the signal sample is declared as periodic or non-periodic. This threshold value can be set by the user as the sensitivity of the algorithm for detecting deviations from periodicity. In the example of
According to one embodiment, once the signal is determined as being non-periodic (i.e. deviation from periodicity), irregularity in the breathing pattern is detected and an alarm signal is transmitted. To improve the reliability of the results, in a preferable embodiment as shown in
If the signal is considered periodic for the current sample time, the process will return to the step 302 to receive new data sample, after resetting variable DEVIATION to zero.
According to an embodiment, estimation of the inhale and exhale periods pursuant to step 304 of
Abs(Y(0)−Y(6))<0.2*Abs(Y(0)+Y(6)−2*Y(3))
to determine whether the sample train includes a minimum or a maximum. In this example the train of seven samples, Y(0), Y(1), Y(2), Y(3), Y(4), Y(5), Y(6), are sub-sampled at 1/20th of the of the number of samples constituting the current estimate of one period. If the result of this test is positive, curve fitting to the samples is performed. One embodiment fits a quadratic curve to the middle five points of the seven-point sample train. The location and value of the minimum or maximum value of this curve is computed using interpolation. Also at this point, it is determined whether the estimated point is a minimum or a maximum by comparing the end samples of the train with the middle sample. The estimated location of the minimum or maximum points are added to their respective accumulator variables for later averaging.
The above process is repeated with the next sensed signal sample until the procedure encounters the first sample for which the above test result is negative. This is an indication that the run of points for which a minimum or maximum can be estimated has ended. At this point the accumulator variables are divided by the number of points in the run to obtain the average location and value from the run.
The process continues by repeating the above test on the sample-train preceding every new sensed signal sample. Once the test result is positive the averaging process described above will start again.
This method estimates the local minimum or maximum location at a point in time that is later than the actual position of the extremum by the length of the sample train. The current estimate of the inhale or exhale period is updated at this point in time. For inhale period, for example, this is performed by subtracting the latest maximum position from the latest minimum position in time. These estimates are used to update the current value of the total period.
The embodiments described herein provides a tool for measuring the periodicity of the respiration signal, thus allowing detection of deviation from normal breathing. This can be used to trigger the alarm during monitoring of breathing movement of an infant.
It is noted that while the embodiment described herein only addresses monitoring of infants, the disclosed invention is applicable to monitor a broad range of possible subjects. For example, the inventive concepts can be applied to monitor other patients, including adult patients. Moreover, the invention could also be applied to monitor non-human subjects, such as animals or non-living subjects such as machinery.
In the foregoing specification, the invention has been described with reference to specific embodiments thereof. It will, however, be evident that various modifications and changes may be made thereto without departing from the broader spirit and scope of the invention. For example, the operations performed by computer 110 can be performed by any combination of hardware and software within the scope of the invention, and should not be limited to particular embodiments comprising a particular definition of “computer”. Similarly, the operations performed by alarm device 116 can be performed by any combination of hardware and software within the scope of the invention, and should not be limited to particular embodiments comprising a particular definition of “alarm device”. The specification and drawings are, accordingly, to be regarded in an illustrative rather than restrictive sense.
Mostafavi, Hassan, Jeung, Andrew, Riaziat, Majid L., Sutherland, Robert M., Zdasiuk, George
Patent | Priority | Assignee | Title |
10004462, | Mar 24 2014 | UNIVERSITY OF HAWAI I; QUEEN S MEDICAL CENTER | Systems, methods, and devices for removing prospective motion correction from medical imaging scans |
10022068, | Oct 28 2013 | Covidien LP | Systems and methods for detecting held breath events |
10043284, | May 07 2014 | Varian Medical Systems, Inc. | Systems and methods for real-time tumor tracking |
10154803, | Sep 05 2006 | VISION RT LIMITED | Patient monitor |
10188356, | Apr 29 2005 | Varian Medical Systems, Inc. | Radiation systems |
10292625, | Dec 07 2010 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring a sleeping subject |
10327708, | Jan 24 2013 | KINETICOR, INC. | Systems, devices, and methods for tracking and compensating for patient motion during a medical imaging scan |
10339654, | Jan 24 2013 | KINETICOR, INC. | Systems, devices, and methods for tracking moving targets |
10376157, | Jan 04 2012 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information using phase locked loop |
10413751, | Mar 02 2016 | VIEWRAY TECHNOLOGIES, INC | Particle therapy with magnetic resonance imaging |
10438349, | Jul 23 2014 | KINETICOR, INC. | Systems, devices, and methods for tracking and compensating for patient motion during a medical imaging scan |
10441226, | Apr 29 2005 | Varian Medical Systems, Inc. | Medical systems with patient supports |
10449390, | Jan 12 2010 | Elekta LTD | Feature tracking using ultrasound |
10463884, | Mar 15 2013 | VIEWRAY TECHNOLOGIES, INC. | Systems and methods for linear accelerator radiotherapy with magnetic resonance imaging |
10531858, | Jul 20 2007 | Elekta LTD | Methods and systems for guiding the acquisition of ultrasound images |
10537289, | Feb 20 2014 | Covidien LP | Systems and methods for filtering autocorrelation peaks and detecting harmonics |
10542962, | Jul 10 2009 | Elekta LTD | Adaptive radiotherapy treatment using ultrasound |
10561861, | May 02 2012 | VIEWRAY TECHNOLOGIES, INC | Videographic display of real-time medical treatment |
10646188, | Jun 26 2001 | Varian Medical Systems, Inc. | Method and system for radiation application |
10653381, | Feb 01 2013 | KINETICOR, INC.; The University of Hawaii; The Queen's Medical Center | Motion tracking system for real time adaptive motion compensation in biomedical imaging |
10653496, | Sep 19 2005 | Varian Medical Systems, Inc. | Apparatus and methods for implanting objects, such as a bronchoscopically implanting markers in the lung of patients |
10660541, | Jul 28 2015 | The University of Hawai'i; The Queen's Medical Center | Systems, devices, and methods for detecting false movements for motion correction during a medical imaging scan |
10663553, | Aug 26 2011 | KINETICOR, INC. | Methods, systems, and devices for intra-scan motion correction |
10667727, | Sep 05 2008 | Varian Medical Systems, Inc | Systems and methods for determining a state of a patient |
10688319, | Feb 20 2004 | University of Florida Research Foundation, Inc. | System for delivering conformal radiation therapy while simultaneously imaging soft tissue |
10716515, | Nov 23 2015 | KINETICOR, INC | Systems, devices, and methods for tracking and compensating for patient motion during a medical imaging scan |
10806409, | Sep 23 2016 | SIEMENS HEALTHINEERS INTERNATIONAL AG | Medical systems with patient supports |
10821303, | Oct 26 2012 | VIEWRAY TECHNOLOGIES, INC. | Assessment and improvement of treatment using imaging of physiological responses to radiation therapy |
10835763, | Oct 26 2012 | VIEWRAY TECHNOLOGIES, INC. | Assessment and improvement of treatment using imaging of physiological responses to radiation therapy |
10869611, | May 19 2006 | The Queen's Medical Center; The University of Hawaii; The Medical Collene of Wisconsin, Inc.; UWM Research Foundation, Inc. | Motion tracking system for real time adaptive imaging and spectroscopy |
11000706, | Dec 13 2016 | VIEWRAY TECHNOLOGIES, INC | Radiation therapy systems and methods |
11033758, | Dec 06 2017 | VIEWRAY TECHNOLOGIES, INC | Radiotherapy systems, methods and software |
11040222, | Oct 26 2012 | VIEWRAY TECHNOLOGIES, INC. | Assessment and improvement of treatment using imaging of physiological responses to radiation therapy |
11083912, | Mar 15 2013 | VIEWRAY TECHNOLOGIES, INC. | Systems and methods for linear accelerator radiotherapy with magnetic resonance imaging |
11100636, | Jul 23 2014 | KINETICOR, INC. | Systems, devices, and methods for tracking and compensating for patient motion during a medical imaging scan |
11147476, | Dec 07 2010 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring a sleeping subject |
11147478, | Sep 05 2006 | VISION RT LIMITED | Patient monitor |
11209509, | May 16 2018 | VIEWRAY TECHNOLOGIES, INC | Resistive electromagnet systems and methods |
11351398, | Mar 02 2016 | VIEWRAY TECHNOLOGIES, INC. | Particle therapy with magnetic resonance imaging |
11378629, | Jun 22 2016 | VIEWRAY TECHNOLOGIES, INC | Magnetic resonance imaging |
11497937, | Feb 20 2004 | University of Florida Research Foundation, Inc. | System for delivering conformal radiation therapy while simultaneously imaging soft tissue |
11612764, | Mar 15 2013 | VIEWRAY TECHNOLOGIES, INC. | Systems and methods for linear accelerator radiotherapy with magnetic resonance imaging |
11768257, | Jun 22 2016 | VIEWRAY TECHNOLOGIES, INC. | Magnetic resonance imaging |
11892523, | Jun 22 2016 | VIEWRAY TECHNOLOGIES, INC. | Magnetic resonance imaging |
7358732, | Oct 24 2005 | The General Hospital Corporation | System, method, software arrangement and computer-accessible medium for providing real-time motion correction by utilizing clover leaf navigators |
7369680, | Sep 27 2001 | SIGNIFY HOLDING B V | Method and apparatus for detecting an event based on patterns of behavior |
7907987, | Feb 20 2004 | UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC | System for delivering conformal radiation therapy while simultaneously imaging soft tissue |
8135198, | Aug 08 2007 | Elekta LTD | Systems and methods for constructing images |
8189738, | Jun 02 2008 | Elekta LTD | Methods and systems for guiding clinical radiotherapy setups |
8190233, | Feb 20 2004 | UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC | System for delivering conformal radiation therapy while simultaneously imaging soft tissue |
8249317, | Jul 20 2007 | Elekta LTD | Methods and systems for compensating for changes in anatomy of radiotherapy patients |
8376954, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Techniques for prediction and monitoring of respiration-manifested clinical episodes |
8403865, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Prediction and monitoring of clinical episodes |
8491492, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring a condition of a subject |
8515513, | Nov 05 2008 | Covidien LP | System and method for facilitating observation of monitored physiologic data |
8517953, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Techniques for prediction and monitoring of coughing-manifested clinical episodes |
8571639, | Sep 05 2003 | Varian Medical Systems, Inc | Systems and methods for gating medical procedures |
8585607, | May 02 2007 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring, predicting and treating clinical episodes |
8603010, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Techniques for prediction and monitoring of clinical episodes |
8679030, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring a condition of a subject |
8679034, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Techniques for prediction and monitoring of clinical episodes |
8731646, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Prediction and monitoring of clinical episodes |
8734360, | May 02 2007 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring, predicting and treating clinical episodes |
8755871, | Nov 30 2011 | Covidien LP | Systems and methods for detecting arrhythmia from a physiological signal |
8788020, | Oct 23 1998 | Varian Medical Systems, Inc | Method and system for radiation application |
8821418, | May 02 2007 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring, predicting and treating clinical episodes |
8840564, | Nov 01 2005 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring a condition of a subject |
8878679, | May 16 2012 | Blue Brain Waves LLC | Baby monitor light |
8880576, | Sep 23 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information from a photoplethysmograph |
8882684, | May 12 2008 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring, predicting and treating clinical episodes |
8942779, | Nov 01 2005 | EARLYSENSE LTD | Monitoring a condition of a subject |
8992434, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Prediction and monitoring of clinical episodes |
8998830, | May 12 2008 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring, predicting and treating clinical episodes |
9026199, | Nov 01 2005 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring a condition of a subject |
9028422, | Sep 05 2006 | VISION RT LIMITED | Patient monitor |
9060746, | Nov 30 2011 | Covidien LP | Systems and methods for detecting arrhythmia from a physiological signal |
9076212, | May 19 2006 | The Queen's Medical Center; The University of Hawaii; The Medical College of Wisconsin, Inc.; UWM Research Foundation, Inc. | Motion tracking system for real time adaptive imaging and spectroscopy |
9119597, | Sep 23 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information from a photoplethysmograph |
9131902, | Feb 05 2004 | Welch Allyn, Inc; Hill-Rom Services, Inc | Prediction and monitoring of clinical episodes |
9138175, | May 19 2006 | The Queen's Medical Center; The University of Hawaii; The Medical College of Wisconsin, Inc.; UWM Research Foundation, Inc. | Motion tracking system for real time adaptive imaging and spectroscopy |
9179876, | Apr 30 2012 | Covidien LP | Systems and methods for identifying portions of a physiological signal usable for determining physiological information |
9232928, | Oct 23 1998 | Varian Medical Systems, Inc | Method and system for predictive physiological gating |
9247896, | Jan 04 2012 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information using phase locked loop |
9248316, | Jan 12 2010 | Elekta LTD | Feature tracking using ultrasound |
9305365, | Jan 24 2013 | Trex Enterprises Corporation; KINETICOR, INC | Systems, devices, and methods for tracking moving targets |
9349190, | Jul 27 2011 | Hitachi, LTD | Ultrasound image processing apparatus |
9402554, | Sep 23 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information from a photoplethysmograph |
9451928, | Sep 13 2006 | Elekta LTD | Incorporating internal anatomy in clinical radiotherapy setups |
9498167, | Apr 29 2005 | Varian Medical Systems, Inc | System and methods for treating patients using radiation |
9554712, | Feb 27 2013 | Covidien LP | Systems and methods for generating an artificial photoplethysmograph signal |
9560978, | Feb 05 2013 | Covidien LP | Systems and methods for determining respiration information from a physiological signal using amplitude demodulation |
9606209, | Aug 26 2011 | KINETICOR, INC | Methods, systems, and devices for intra-scan motion correction |
9607377, | Jan 24 2013 | KINETICOR, INC. | Systems, devices, and methods for tracking moving targets |
9675274, | Sep 23 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information from a photoplethysmograph |
9687159, | Feb 27 2013 | Covidien LP | Systems and methods for determining physiological information by identifying fiducial points in a physiological signal |
9689566, | May 16 2012 | Blue Brain Waves LLC | Baby monitor light |
9693709, | Sep 23 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information from a photoplethysmograph |
9693736, | Nov 30 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information using historical distribution |
9717461, | Jan 24 2013 | Trex Enterprises Corporation; KINETICOR, INC | Systems, devices, and methods for tracking and compensating for patient motion during a medical imaging scan |
9734589, | Jul 23 2014 | KINETICOR, INC | Systems, devices, and methods for tracking and compensating for patient motion during a medical imaging scan |
9737266, | Sep 23 2011 | NELLCOR PURITAN BENNETT IRELAND | Systems and methods for determining respiration information from a photoplethysmograph |
9779502, | Jan 24 2013 | KINETICOR, INC. | Systems, devices, and methods for tracking moving targets |
9782141, | Feb 01 2013 | The University of Hawaii; THE QUEEN S MEDICAL CENTER | Motion tracking system for real time adaptive motion compensation in biomedical imaging |
9848820, | Jan 07 2014 | Covidien LP | Apnea analysis system and method |
9867549, | May 19 2006 | The Queen's Medical Center; The University of Hawaii; The Medical College of Wisconsin, Inc.; UWM Research Foundation, Inc. | Motion tracking system for real time adaptive imaging and spectroscopy |
9883809, | May 01 2008 | Welch Allyn, Inc; Hill-Rom Services, Inc | Monitoring, predicting and treating clinical episodes |
9901308, | Feb 20 2014 | Covidien LP | Systems and methods for filtering autocorrelation peaks and detecting harmonics |
9919165, | May 07 2014 | Varian Medical Systems, Inc | Systems and methods for fiducial to plan association |
9927502, | Feb 19 2007 | Toshiba Medical Systems Corporation | Respiration suppressing mat and magnetic resonance imaging apparatus and method |
9939130, | Mar 15 2013 | Varian Medical Systems, Inc | Marker system with light source |
9943247, | Jul 28 2015 | UNIVERSITY OF HAWAI I; QUEEN S MEDICAL CENTER | Systems, devices, and methods for detecting false movements for motion correction during a medical imaging scan |
9966160, | Nov 24 2015 | VIEWRAY TECHNOLOGIES, INC | Radiation beam collimating systems and methods |
9974494, | Apr 29 2005 | Varian Medical Systems, Inc. | System and methods for treating patients using radiation |
Patent | Priority | Assignee | Title |
3861807, | |||
3871360, | |||
3952201, | Jul 21 1973 | Thorn EMI Patents Limited | Radiography |
4031884, | Jun 07 1974 | INSTITUT NATIONAL DE LA SANTE ET DE LA RECHERCHE MEDICALE | Apparatus for correlating the respiratory and cardiac cycles |
4262306, | Apr 27 1977 | Method and apparatus for monitoring of positions of patients and/or radiation units | |
4463425, | Jul 17 1980 | Terumo Corporation | Period measurement system |
4710717, | Dec 29 1986 | General Electric Company | Method for fast scan cine NMR imaging |
4853771, | Jul 09 1986 | The United States of America as represented by the Secretary of the Navy | Robotic vision system |
4895160, | May 22 1986 | Apparatus for measuring the life functions of a human being, particularly an infant | |
4971065, | Feb 11 1985 | Transducer for detecting apnea | |
4994965, | Nov 23 1988 | General Electric Company; GENERAL ELECTRIC COMPANY, MILWAUKEE, WI, A NY CORP | Method for reducing motion induced image artifacts in projection imaging |
5080100, | Oct 04 1988 | CGR MEY, 551, RUE DE LA MINIERE - 78530 BUC FRANCE A COMPANY OF FRANCE | System and method for measuring and/or checking the position of a patient in a radio-therapy machine |
5271055, | Aug 19 1992 | General Electric Company | Methods for reducing motion induced artifacts in a projection imaging system |
5279309, | Jun 13 1991 | International Business Machines Corporation | Signaling device and method for monitoring positions in a surgical operation |
5295483, | May 11 1990 | BANK OF MONTREAL | Locating target in human body |
5315630, | Mar 11 1992 | DEUTSCHES KREBSFORSCHUNGSZENTRUM | Positioning device in medical apparatus |
5389101, | Apr 21 1992 | SOFAMOR DANEK HOLDINGS, INC | Apparatus and method for photogrammetric surgical localization |
5394875, | Oct 21 1993 | MARKER, LLC | Automatic ultrasonic localization of targets implanted in a portion of the anatomy |
5446548, | Oct 08 1993 | National Research Council of Canada; Siemens Medical Systems, Inc | Patient positioning and monitoring system |
5482042, | Jul 07 1993 | Kabushiki Kaisha Toshiba | Medical imaging apparatus |
5513646, | Nov 09 1992 | ILIFE SOLUTIONS, INC | Personal security monitoring system and method |
5538494, | Mar 17 1994 | Hitachi, Ltd. | Radioactive beam irradiation method and apparatus taking movement of the irradiation area into consideration |
5565777, | Sep 13 1993 | Kabushiki Kaisha Toshiba | Method/apparatus for NMR imaging using an imaging scheme sensitive to inhomogeneity and a scheme insensitive to inhomogeneity in a single imaging step |
5582182, | Oct 03 1994 | Sierra Biotechnology Company, LC | Abnormal dyspnea perception detection system and method |
5603318, | Apr 21 1992 | SOFAMOR DANEK HOLDINGS, INC | Apparatus and method for photogrammetric surgical localization |
5619995, | Nov 12 1991 | Motion video transformation system and method | |
5622187, | Sep 30 1994 | Best Medical International, Inc | Method and apparatus for patient positioning for radiation therapy |
5638819, | Aug 29 1995 | Method and apparatus for guiding an instrument to a target | |
5662111, | Jan 28 1991 | INTEGRA RADIONICS, INC | Process of stereotactic optical navigation |
5662112, | Aug 11 1995 | Siemens Healthcare GmbH | Method for time- and location-resolved display of functional brain activities of a patient |
5727554, | Sep 19 1996 | UNIVERSITY OF PITTSBURGH - OF THE COMMONWEALTH SYSTEM OF EDUCATION | Apparatus responsive to movement of a patient during treatment/diagnosis |
5764723, | Oct 16 1996 | TRUSTEES OF COLUMBIA UNIVERSITY IN THE CITY OF NEW YORK, THE | Apparatus and method to gate a source for radiation therapy |
5771310, | Dec 30 1996 | Shriners Hospitals for Children | Method and apparatus for recording three-dimensional topographies |
5784431, | Oct 29 1996 | UNIVERSITY OF PITTSBURGH - OF THE COMMONWEALTH SYSTEM OF EDUCATION | Apparatus for matching X-ray images with reference images |
5820553, | Aug 16 1996 | Siemens Medical Systems, Inc. | Identification system and method for radiation therapy |
5823192, | Jul 31 1996 | University of Pittsburgh of the Commonwealth System of Higher Education | Apparatus for automatically positioning a patient for treatment/diagnoses |
5836954, | Apr 21 1992 | SOFAMOR DANEK HOLDINGS, INC | Apparatus and method for photogrammetric surgical localization |
5912656, | Jul 01 1994 | Datex-Ohmeda, Inc | Device for producing a display from monitored data |
5954647, | Feb 14 1995 | UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC | Marker system and related stereotactic procedure |
5993397, | Jan 23 1998 | Infant respiratory monitor | |
6076005, | Feb 25 1998 | ST JUDE CHILDREN S RESEARCH HOSPITAL | Respiration responsive gating means and apparatus and methods using the same |
6138302, | Nov 10 1998 | University of Pittsburgh of the Commonwealth System of Higher Education | Apparatus and method for positioning patient |
6144874, | Oct 15 1998 | General Electric Company | Respiratory gating method for MR imaging |
6144875, | Mar 16 1999 | MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT | Apparatus and method for compensating for respiratory and patient motion during treatment |
6146390, | Apr 21 1992 | Sofamor Danek Holdings, Inc. | Apparatus and method for photogrammetric surgical localization |
6165181, | Apr 21 1992 | SOFAMOR DANEK HOLDINGS, INC | Apparatus and method for photogrammetric surgical localization |
6185445, | Jul 30 1997 | Bruker Biospin MRI GmbH | MR tomograph comprising a positioning system for the exact determination of the position of a manually guided manipulator |
6185446, | Aug 21 1998 | M2X, INC | Method and apparatus for monitoring the breathing of a patient during magnetic resonance imaging |
6198959, | Mar 27 1998 | Cornell Research Foundation Inc. | Coronary magnetic resonance angiography using motion matched acquisition |
6272368, | Oct 01 1997 | Siemens Aktiengesellschaft | Medical installation having an apparatus for acquiring the position of at least one object located in a room |
6296613, | Aug 22 1997 | AO Technology AG | 3D ultrasound recording device |
6300974, | Feb 28 1997 | Commissariat a l'Energie Atomique | Process and device for locating an object in space |
6348058, | Dec 12 1997 | SOFAMOR DANEK GROUP, INC | Image guided spinal surgery guide, system, and method for use thereof |
6370217, | May 07 1999 | General Electric Company | Volumetric computed tomography system for cardiac imaging |
6405072, | Jan 28 1991 | INTEGRA BURLINGTON MA, INC | Apparatus and method for determining a location of an anatomical target with reference to a medical apparatus |
6434507, | Sep 05 1997 | Medtronic Navigation, Inc | Medical instrument and method for use with computer-assisted image guided surgery |
6473635, | Sep 30 1999 | Koninklijke Philips Electronics N V | Method of and device for determining the position of a medical instrument |
6501981, | Mar 16 1999 | MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT | Apparatus and method for compensating for respiratory and patient motions during treatment |
6527443, | Apr 20 1999 | Brainlab AG | Process and apparatus for image guided treatment with an integration of X-ray detection and navigation system |
6611617, | Jul 26 1995 | 3D Scanners Limited | Scanning apparatus and method |
6621889, | Oct 23 1998 | Varian Medical Systems, Inc | Method and system for predictive physiological gating of radiation therapy |
6661617, | Dec 14 1999 | Seagate Technology LLC | Structure and fabrication process for integrated moving-coil magnetic micro-actuator |
6665370, | Jul 09 2001 | Siemens Healthcare GmbH | Computed tomography method and apparatus for acquiring images dependent on a time curve of a periodic motion of the subject |
6724930, | Feb 04 1999 | Olympus Corporation | Three-dimensional position and orientation sensing system |
20020023652, | |||
20030007593, | |||
20030063292, | |||
20030072419, | |||
20030210812, | |||
20040071337, | |||
20040116804, | |||
20040218719, | |||
DE4341324, | |||
FI79458, | |||
WO9816151, | |||
WO9838908, |
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